Challenges in antimicrobial drug discovery and the potential of nucleoside antibiotics
Suguna Rachakonda1, Leanne Cartee
1Pharmasset, Inc, 1860 Montreal Rd, Atlanta, GA 30084, USA. srachakonda@pharmasset.com
Abstract:
Antimicrobial resistance in hospital and community settings is growing at an alarming rate and has been attributed to such organisms as methicillin-resistant staphylococcus aureus, staphylococci with decreased susceptibility to vancomycin, vancomycin-resistant enterococci, multi-drug resistant pseudomonas spp., klebsiella spp., enterobacter spp, and acinetobacter spp., as well as Streptococcus pneumoniae with decreased susceptibility to penicillin and other antibacterials. To address the need for new therapies to combat resistant organisms, drug companies are refocusing their discovery efforts on developing novel agents with new mechanisms of action. The hope is that rapidly emerging technologies including combinatorial chemistry, high throughput screening, proteomics and microbial genomics will have a positive impact on antimicrobial drug discovery. These technologies should aid in the identification of novel drug targets and compounds with unique mechanisms of action other than those currently provided by the traditional antibiotics. Nucleosides are one class of compounds worthy of further investigation as antibacterials since some derivatives have shown moderate to good activity against specific bacterial strains. For example, 5'-peptidyl nucleoside derivatives can inhibit peptide deformylase, an enzyme essential for bacterial survival that is not vital to human cells. This review also includes a list of miscellaneous nucleosides that have been synthesized as potential antibacterials. More detailed investigations on structure, as it relates to the antimicrobial activity of the various classes of nucleosides, need to be conducted in order to maximize the potential of developing a potent nucleoside for the treatment of bacterial infections. This review begins with an introduction to terms followed by discussions regarding the general background and relevance for developing novel antimicrobial agents. Challenges facing the antimicrobial drug discovery process are discussed along with relevant drug targets. An overview of nucleoside chemistry as it relates to antimicrobial activity is presented, followed by a discussion of the evidence which supports the potential of this class of compounds to yield the novel antimicrobial therapies needed in the new millennium.
Insights
Antimicrobial resistance is a growing threat, necessitating novel therapies. Nucleoside derivatives show promise as new antibacterial agents by targeting essential bacterial enzymes like peptide deformylase.
Area of Science:
- Microbiology
- Medicinal Chemistry
- Drug Discovery
Background:
- Alarming rise in antimicrobial resistance (AMR) from various pathogens.
- Need for novel antimicrobial agents with new mechanisms of action.
- Emerging technologies like genomics and proteomics aid drug discovery.
Purpose of the Study:
- Investigate nucleosides as a potential class of novel antibacterial agents.
- Explore structure-activity relationships for optimizing nucleoside antibacterials.
- Identify new drug targets and compounds to combat resistant bacterial infections.
Main Methods:
- Review of existing literature on nucleoside chemistry and antimicrobial activity.
- Discussion of emerging technologies in antimicrobial drug discovery.
- Analysis of specific nucleoside derivatives, such as 5'-peptidyl nucleosides, and their targets.
Main Results:
- Some nucleoside derivatives exhibit moderate to good activity against specific bacterial strains.
- 5'-peptidyl nucleoside derivatives show potential by inhibiting bacterial peptide deformylase.
- A list of synthesized nucleosides with potential antibacterial properties is included.
Conclusions:
- Nucleosides represent a promising class for developing novel antibacterial therapies.
- Further research into structure-activity relationships is crucial for maximizing potency.
- Nucleoside-based drugs could offer new solutions against resistant bacterial infections.
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